Properties of SiC‐Si made via binder jet 3D printing of SiC powder, carbon addition, and silicon melt infiltration

材料科学 碳化硅 复合材料 热解 抗弯强度 多孔性 陶瓷 热导率 热膨胀 复合数 碳纤维 渗透(HVAC) 化学气相渗透 化学工程 冶金 工程类
作者
Corson L. Cramer,Amy Elliott,Edgar Lara‐Curzio,Alexis Flores‐Betancourt,Michael J. Lance,Lu Han,Jesse Blacker,Artem Trofimov,Hsin Wang,Ercan Cakmak,Kashif Nawaz
出处
期刊:Journal of the American Ceramic Society [Wiley]
卷期号:104 (11): 5467-5478 被引量:76
标识
DOI:10.1111/jace.17933
摘要

Abstract We report the physical and mechanical properties of ceramic composite materials fabricated by binder jet 3D printing (BJ3DP) with silicon carbide (SiC) powders, followed by phenolic resin infiltration and pyrolysis (IP) to generate carbon, and a final reactive silicon melt infiltration step. After two phenolic resin infiltration and pyrolysis cycles; porosity was less than 2%, Young's modulus was close to 300 GPa, and the flexural strength was 517.6 ± 24.8 MPa. However, diminishing returns were obtained after more than two phenolic resin infiltration and pyrolysis cycles as surface pores in carbon were closed upon the formation of SiC, resulting in reaction choking and residual‐free carbon and porosity. The instantaneous coefficient of thermal expansion of the composite was found to be independent of the number of phenolic IP cycles and had values of between 4.2 and 5.0 ppm/°C between 300 and 1000℃, whereas the thermal conductivity was found to have a weak dependence on the number of phenolic IP cycles. While the manufacturing procedures described here yielded highly dense, gas impermeable, siliconized SiC composites with properties comparable to those of bulk siliconized silicon carbide processed according to conventional techniques, BJ3DP enables the manufacture of objects with complex shape, unlike conventional techniques.
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